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Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy

BACKGROUND AND PURPOSE: Postmastectomy radiotherapy (PMRT) is complex to plan and deliver, but could be improved with 3D-printed, patient-specific electron tissue compensators. The purposes of this study were to develop an algorithm to design patient-specific compensators that achieve clinical goals...

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Autores principales: Craft, Daniel F., Balter, Peter, Woodward, Wendy, Kry, Stephen F., Salehpour, Mohammad, Ger, Rachel, Peters, Mary, Baltz, Garrett, Traneus, Erik, Howell, Rebecca M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7807570/
https://www.ncbi.nlm.nih.gov/pubmed/33458415
http://dx.doi.org/10.1016/j.phro.2018.11.005
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author Craft, Daniel F.
Balter, Peter
Woodward, Wendy
Kry, Stephen F.
Salehpour, Mohammad
Ger, Rachel
Peters, Mary
Baltz, Garrett
Traneus, Erik
Howell, Rebecca M.
author_facet Craft, Daniel F.
Balter, Peter
Woodward, Wendy
Kry, Stephen F.
Salehpour, Mohammad
Ger, Rachel
Peters, Mary
Baltz, Garrett
Traneus, Erik
Howell, Rebecca M.
author_sort Craft, Daniel F.
collection PubMed
description BACKGROUND AND PURPOSE: Postmastectomy radiotherapy (PMRT) is complex to plan and deliver, but could be improved with 3D-printed, patient-specific electron tissue compensators. The purposes of this study were to develop an algorithm to design patient-specific compensators that achieve clinical goals, to 3D-print the planned compensators, and validate calculated dose distributions with film and thermoluminescent dosimeter (TLD) measurements in 3D-printed phantoms of PMRT patients. MATERIALS AND METHODS: An iterative algorithm was developed to design compensators corresponding to single-field, single-energy electron plans for PMRT patients. The 3D-printable compensators were designed to fit into the electron aperture, with cerrobend poured around it. For a sample of eight patients, calculated dose distributions for compensator plans were compared with patients’ (multi-field, multi-energy) clinical treatment plans. For all patients, dosimetric parameters were compared including clinical target volume (CTV), lung, and heart metrics. For validation, compensators were fabricated and irradiated for a set of six 3D-printed patient-specific phantoms. Dose distributions in the phantoms were measured with TLD and film. These measurements were compared with the treatment planning system calculated dose distributions. RESULTS: The compensator treatment plans achieved superior CTV coverage (97% vs 89% of the CTV receiving the prescription dose, p < 0.0025), and similar heart and lung doses (p > 0.35) to the conventional treatment plans. Average differences between calculated and measured TLD values were 2%, and average film profile differences were <2 mm. CONCLUSIONS: We developed a new compensator based treatment methodology for PMRT and demonstrated its validity and superiority to conventional multi-field plans through end-to-end testing.
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spelling pubmed-78075702021-01-14 Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy Craft, Daniel F. Balter, Peter Woodward, Wendy Kry, Stephen F. Salehpour, Mohammad Ger, Rachel Peters, Mary Baltz, Garrett Traneus, Erik Howell, Rebecca M. Phys Imaging Radiat Oncol Original Research Article BACKGROUND AND PURPOSE: Postmastectomy radiotherapy (PMRT) is complex to plan and deliver, but could be improved with 3D-printed, patient-specific electron tissue compensators. The purposes of this study were to develop an algorithm to design patient-specific compensators that achieve clinical goals, to 3D-print the planned compensators, and validate calculated dose distributions with film and thermoluminescent dosimeter (TLD) measurements in 3D-printed phantoms of PMRT patients. MATERIALS AND METHODS: An iterative algorithm was developed to design compensators corresponding to single-field, single-energy electron plans for PMRT patients. The 3D-printable compensators were designed to fit into the electron aperture, with cerrobend poured around it. For a sample of eight patients, calculated dose distributions for compensator plans were compared with patients’ (multi-field, multi-energy) clinical treatment plans. For all patients, dosimetric parameters were compared including clinical target volume (CTV), lung, and heart metrics. For validation, compensators were fabricated and irradiated for a set of six 3D-printed patient-specific phantoms. Dose distributions in the phantoms were measured with TLD and film. These measurements were compared with the treatment planning system calculated dose distributions. RESULTS: The compensator treatment plans achieved superior CTV coverage (97% vs 89% of the CTV receiving the prescription dose, p < 0.0025), and similar heart and lung doses (p > 0.35) to the conventional treatment plans. Average differences between calculated and measured TLD values were 2%, and average film profile differences were <2 mm. CONCLUSIONS: We developed a new compensator based treatment methodology for PMRT and demonstrated its validity and superiority to conventional multi-field plans through end-to-end testing. Elsevier 2018-11-29 /pmc/articles/PMC7807570/ /pubmed/33458415 http://dx.doi.org/10.1016/j.phro.2018.11.005 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research Article
Craft, Daniel F.
Balter, Peter
Woodward, Wendy
Kry, Stephen F.
Salehpour, Mohammad
Ger, Rachel
Peters, Mary
Baltz, Garrett
Traneus, Erik
Howell, Rebecca M.
Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy
title Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy
title_full Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy
title_fullStr Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy
title_full_unstemmed Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy
title_short Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy
title_sort design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy
topic Original Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7807570/
https://www.ncbi.nlm.nih.gov/pubmed/33458415
http://dx.doi.org/10.1016/j.phro.2018.11.005
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